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Discovery of Small Molecule Bak Activator for Lung Cancer Therapy
Dongkyoo Park1, Abu Syed Md Anisuzzaman1, Andrew T Magis2
1Department of Radiation Oncology, Emory University School of Medicine and Winship Cancer Institute of Emory University, Atlanta, Georgia 30322, USA.
Abstract:
Rationale: Bak is a major proapoptotic Bcl2 family member and a required molecule for apoptotic cell death. High levels of endogenous Bak were observed in both small cell lung cancer (SCLC) and non-small cell lung cancer (NSCLC) cell lines. Increased Bak expression was correlated with poor prognosis of NSCLC patients, suggesting that Bak protein is an attractive target for lung cancer therapy. The BH3 domain functions as death domain and is required for Bak to initiate apoptotic cell death. Thus, the BH3 domain is attractive target for discovery of Bak agonist. Methods: The BH3 death domain binding pocket (aa75-88) of Bak was chosen as a docking site for screening of small molecule Bak activators using the UCSF DOCK 6.1 program suite and the NCI chemical library (300,000 small molecules) database. The top 500 compounds determined to have the highest affinity for the BH3 domain were obtained from the NCI and tested for cytotoxicity for further screening. We identified a small molecule Bak activator BKA-073 as the lead compound. The binding affinity of BKA-073 with Bak protein was analyzed by isothermal titration calorimetry (ITC) assay. BKA-073-mediated Bak activation via oligomerization was analyzed by a cross-linking with Bis (maleimido) hexane (BMH). Sensitivity of BKA-073 to lung cancer cells in vitro was evaluated by dynamic BH3 profiling (DBP) and apoptotic cell death assay. The potency of BKA-073 alone or in combination with radiotherapy or Bcl2 inhibitor was evaluated in animal models. Results: We found that BKA-073 binds Bak at BH3 domain with high affinity and selectivity. BKA-073/Bak binding promotes Bak oligomerization and mitochondrial priming that activates its proapoptotic function. BKA-073 potently suppresses tumor growth without significant normal tissue toxicity in small cell lung cancer (SCLC) and NSCLC xenografts, patient-derived xenografts, and genetically engineered mouse models of mutant KRAS-driven cancer. Bak accumulates in radioresistant lung cancer cells and BKA-073 reverses radioresistance. Combination of BKA-073 with Bcl-2 inhibitor venetoclax exhibits strong synergy against lung cancer in vivo. Conclusions: Development of small molecule Bak activator may provide a new class of anticancer agents to treat lung cancer.
Insights
A novel small molecule Bak activator, BKA-073, effectively targets lung cancer by inducing apoptosis. This new class of anticancer agents shows promise in preclinical models, offering a potential new therapy for both small cell lung cancer and non-small cell lung cancer.
Area of Science:
- Molecular Biology
- Oncology
- Drug Discovery
Background:
- Bak, a proapoptotic protein, is crucial for cell death and highly expressed in lung cancers.
- Elevated Bak levels correlate with poor prognosis in non-small cell lung cancer (NSCLC), identifying Bak as a therapeutic target.
- The BH3 domain of Bak is essential for its function and serves as a target for developing Bak agonists.
Purpose of the Study:
- To identify small molecule activators of Bak by screening for compounds that bind to its BH3 domain.
- To evaluate the efficacy and safety of a lead compound, BKA-073, in preclinical lung cancer models.
Main Methods:
- Computational screening using UCSF DOCK 6.1 identified potential Bak BH3 domain binders from the NCI chemical library.
- Cytotoxicity assays and biophysical methods (ITC, BMH cross-linking) characterized the lead compound BKA-073.
- In vitro (dynamic BH3 profiling, apoptosis assays) and in vivo (xenograft, genetically engineered mouse models) studies assessed BKA-073's anti-cancer activity, alone and in combination therapies.
Main Results:
- BKA-073 demonstrated high-affinity and selective binding to the Bak BH3 domain, promoting Bak oligomerization and apoptosis.
- BKA-073 effectively suppressed tumor growth in various lung cancer models (SCLC, NSCLC, KRAS-mutant) with minimal toxicity.
- BKA-073 reversed radioresistance in lung cancer cells and showed synergistic effects when combined with venetoclax (a Bcl-2 inhibitor).
Conclusions:
- Small molecule Bak activators, exemplified by BKA-073, represent a promising new therapeutic strategy for lung cancer.
- BKA-073 exhibits potent anti-tumor activity and overcomes resistance mechanisms, suggesting its potential as a novel anticancer agent.
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